Heat exchanger for magnetic energy oxygen treatment
By employing staggered baffles and threaded rods in the heat exchanger to create a complex flow pattern, the problem of cleaning difficulty and cost caused by adding plates in existing technologies is solved, achieving efficient heat exchange and optimized space utilization.
Patent Information
- Application Number
- CN202423033093.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-10
AI Technical Summary
Existing heat exchangers improve heat exchange efficiency by increasing the number of plates to increase fluid flow path, but this increases cleaning difficulty and production costs, and also results in low space utilization.
The staggered baffle design forms a curved flow channel, and the threaded rod and nut structure realizes a complex flow pattern for the fluid, reducing the number of plates and improving the fluid heat exchange efficiency.
Without increasing the number of plates, improve fluid heat exchange efficiency, reduce cleaning intensity and working time, reduce production costs, and optimize space utilization.
Smart Images

Figure CN223538150U_ABST
Abstract
Description
Technical Field
[0001] This utility model mainly relates to the technical field of heat exchangers, specifically a heat exchanger for magnetic oxygen treatment. Background Technology
[0002] Electromagnetic heating technology is a heating method that uses the principle of electromagnetic induction to convert electrical energy into heat energy. The basic principle of this technology is to generate eddy currents in a conductor through high-frequency current. The eddy currents are converted into heat energy due to the resistance of the conductor, thereby achieving the purpose of heating. In magnetic energy oxidation devices, heat exchangers are required. A heat exchanger is a highly efficient heat exchange device. It consists of a series of metal plates that are arranged alternately at certain intervals and assembled together by fixing bolts and movable clamping devices. Narrow flow channels are formed between the plates, which allows heat to be transferred efficiently between two fluids.
[0003] The main components of a plate heat exchanger include plates, a frame, clamping devices, seals, connecting pipes, and supports. The plates are the core component, typically made of stainless steel, titanium, aluminum, or other corrosion-resistant materials. Over time, dirt, deposits, biofilms, or corrosion products accumulate on the heat exchanger plates. These deposits create thermal resistance, reducing heat exchange efficiency, and also reduce fluid flow paths, increasing fluid resistance and decreasing flow rate. The presence of salts or other corrosive substances promotes plate corrosion, necessitating regular cleaning. However, current plate heat exchangers often have a large number of plates, primarily to lengthen the fluid flow path within the heat exchanger. The fluid repeatedly traverses between the plates, creating a more complex flow pattern to improve heat exchange efficiency. Due to the large number of plates, each plate needs to be cleaned individually, significantly increasing the intensity and time required for each cleaning, which is inconvenient. Furthermore, the increased number of plates also increases production costs and reduces space utilization. Utility Model Content
[0004] This utility model provides a solution that is significantly different from existing technologies, addressing the problem that existing solutions are too simplistic. Specifically, this utility model provides a heat exchanger for magnetic oxygen treatment, which solves the technical problem mentioned in the background art: in current heat exchangers, increasing the number of plates to increase the flow path of fluids and improve heat exchange efficiency increases the intensity of subsequent plate cleaning.
[0005] The technical solution adopted by this utility model to solve the above-mentioned technical problems is as follows:
[0006] A heat exchanger for magnetic oxygen treatment includes a heat exchange mechanism comprising a first clamping plate, a second clamping plate, and a support frame. A heat exchange element is disposed between the first clamping plate and the second clamping plate. The heat exchange element comprises two first plates and two second plates, which are arranged alternately. Each first plate and second plate contains multiple baffles, which are staggered within the corresponding plates to form a curved flow channel.
[0007] Furthermore, a first sealing ring and a second sealing ring are respectively provided at the through holes and edge positions on each of the first plate and the second plate.
[0008] Furthermore, the first clamp is provided with a cold water inlet, a cold water outlet, a hot water outlet, and a hot water inlet.
[0009] Furthermore, the first clamping plate, the second clamping plate, and the support frame are all provided with two first threaded rods, and each of the first threaded rods has a first nut at both ends, with the first nut located on the outside of the first clamping plate and the support frame.
[0010] Furthermore, the heat exchanger is located between the first threaded rod and the second threaded rod, and the recesses on the upper and lower sides of the plate in the heat exchanger are positioned in conjunction with the threaded rod.
[0011] Furthermore, the first clamping plate and the second clamping plate are provided with four second threaded rods, and each of the second threaded rods is provided with a second nut at both ends.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0013] This invention, through the arrangement of a first clamping plate, a second clamping plate, a support frame, a threaded rod, a nut, plates, baffles, and a sealing ring, increases the flow distance of the fluid between the plates, allowing the fluid to repeatedly shuttle back and forth within each plate, forming a more complex flow pattern. This effectively improves the heat exchange efficiency between the fluids. It eliminates the need to increase the number of plates to expand the flow path, reducing the intensity and time required for each cleaning cycle, making it very convenient. Compared to existing heat exchangers, it effectively reduces the number of plates in each heat exchanger, lowering production costs and space occupancy. By increasing the fluid flow path within a smaller space, it optimizes spatial distribution and improves space utilization.
[0014] The present invention will be explained in detail below with reference to the accompanying drawings and specific embodiments. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0016] Figure 2This is an exploded view of the overall structure of this utility model;
[0017] Figure 3 This is an exploded view of the heat exchanger of this utility model.
[0018] In the diagram: 1. Heat exchange mechanism; 11. First clamping plate; 111. Cold water inlet; 112. Cold water outlet; 113. Hot water outlet; 114. Hot water inlet; 12. Second clamping plate; 13. Support frame; 14. First threaded rod; 141. First nut; 15. Second threaded rod; 151. Second nut; 2. Heat exchange component; 21. First plate; 22. Second plate; 23. Baffle plate; 24. First sealing ring; 25. Second sealing ring. Detailed Implementation
[0019] To facilitate understanding of this utility model, a more comprehensive description of the utility model will be given below with reference to the accompanying drawings, which show several embodiments of the utility model. However, the utility model can be implemented in different forms and is not limited to the embodiments described in the text. On the contrary, these embodiments are provided to make the disclosure of the utility model more thorough and comprehensive.
[0020] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly on the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.
[0021] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly associated with those skilled in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments and is not intended to limit the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0022] Please refer to the appendix carefully. Figure 1-3 A heat exchanger for magnetic oxygen treatment includes a heat exchange mechanism 1. The heat exchange mechanism 1 includes a first clamping plate 11, a second clamping plate 12, and a support frame 13. A heat exchange element 2 is disposed between the first clamping plate 11 and the second clamping plate 12. The heat exchange element 2 includes two first plates 21 and two second plates 22, which are arranged alternately. Each first plate 21 and second plate 22 is provided with a plurality of baffles 23, which are staggered in the corresponding plates to form a curved flow channel.
[0023] The above structure increases the flow distance of the fluid between the plates, allowing the fluid to repeatedly shuttle back and forth within each plate, forming a more complex flow pattern. This effectively improves the heat exchange efficiency between the fluids. It eliminates the need to increase the number of plates to increase the flow path, reducing the intensity and time of each cleaning operation, which is very convenient. It also reduces production costs, optimizes the spatial distribution, reduces space occupation, and improves space utilization.
[0024] The specific operation is as follows: during use, cold water and hot water are introduced into the cold water inlet 111 and hot water inlet 114 respectively. Then, the cold water and hot water enter between the plates and flow into the curved flow channel formed by the baffle plate 23 to transfer heat. Finally, they flow out from the cold water outlet 112 and hot water outlet 113 respectively to complete the heat exchange.
[0025] Please refer to the appendix carefully. Figure 2 and attached Figure 3 Each of the first plate 21 and the second plate 22 has a first sealing ring 24 and a second sealing ring 25 respectively provided at the through hole and edge position. Through the mutual cooperation between the first sealing ring 24 and the second sealing ring 25, the sealing performance at the connection between the plates is improved, preventing liquid leakage. The first clamping plate 11 is provided with a cold water inlet 111, a cold water outlet 112, a hot water outlet 113, and a hot water inlet 114 to connect with external liquid pipes. The first clamping plate 11, the second clamping plate 12, and the support frame 13 are provided with two first threaded rods 14. Each first threaded rod 14 has a first nut 141 at both ends. The first nut 141 is located at... The heat exchanger 2 is located between the first threaded rod 14 and the second threaded rod 15 on the outside of the first clamping plate 11 and the support frame 13. The recesses on the upper and lower sides of the plate in the heat exchanger 2 are positioned in conjunction with the threaded rods. Through the mutual cooperation between the first threaded rod 14 and the first nut 141, the heat exchanger 2 is initially clamped and provided with an upward supporting force for positioning. Four second threaded rods 15 are provided on the first clamping plate 11 and the second clamping plate 12, and each second threaded rod 15 is provided with a second nut 151 at both ends. Through the mutual cooperation between the second threaded rods 15 and the second nut 151, the clamping force on the heat exchanger 2 is further improved.
[0026] The present invention has been described above by way of example in conjunction with the accompanying drawings. Obviously, the specific implementation of the present invention is not limited to the above-described manner. Any non-substantial improvement made by adopting the inventive concept and technical solution of the present invention, or the direct application of the inventive concept and technical solution of the present invention to other occasions without modification, shall be within the protection scope of the present invention.
Claims
1. A heat exchanger for magnetic oxygen treatment, comprising a heat exchange mechanism (1), the heat exchange mechanism (1) comprising a first clamping plate (11), a second clamping plate (12) and a support frame (13), wherein a heat exchange element (2) is disposed between the first clamping plate (11) and the second clamping plate (12), characterized in that, The heat exchanger (2) includes two first plates (21) and two second plates (22), and the first plates (21) and the second plates (22) are arranged alternately. Each first plate (21) and the second plate (22) is provided with multiple baffles (23), and the baffles (23) are arranged alternately in the corresponding plates to form a curved flow channel.
2. A heat exchanger for magnetic oxygen treatment according to claim 1, characterized in that, Each of the first plate (21) and the second plate (22) is provided with a first sealing ring (24) and a second sealing ring (25) at the through hole and the edge position, respectively.
3. A heat exchanger for magnetic oxygen treatment according to claim 1, characterized in that, The first clamp (11) is provided with a cold water inlet (111), a cold water outlet (112), a hot water outlet (113) and a hot water inlet (114).
4. A heat exchanger for magnetic oxygen treatment according to claim 3, characterized in that, Two first threaded rods (14) are provided on the first clamping plate (11), the second clamping plate (12) and the support frame (13). Each first threaded rod (14) has a first nut (141) at both ends. The first nut (141) is located on the outside of the first clamping plate (11) and the support frame (13).
5. A heat exchanger for magnetic oxygen treatment according to claim 1, characterized in that, The heat exchanger (2) is located between the first threaded rod (14) and the second threaded rod (15), and the recesses on the upper and lower sides of the plate in the heat exchanger (2) are positioned in conjunction with the threaded rod.
6. A heat exchanger for magnetic oxygen treatment according to claim 4, characterized in that, The first clamping plate (11) and the second clamping plate (12) are provided with four second threaded rods (15), and each second threaded rod (15) is provided with a second nut (151) at both ends.